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22 - A critique of ecological theory and a salute to natural history

from Part II - Modern invaders

Published online by Cambridge University Press:  05 February 2014

Herbert H. T. Prins
Affiliation:
Wageningen Universiteit, The Netherlands
Iain J. Gordon
Affiliation:
The James Hutton Institute, SCRI, Scotland
Herbert H. T. Prins
Affiliation:
Wageningen Universiteit, The Netherlands
Iain J. Gordon
Affiliation:
The James Hutton Institute, Scotland
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Summary

Just as the proof of the pudding is in the eating, so it is in science that the testing of hypotheses is at the core of the development of theory. As set out in this book’s Introduction (Chapter 1), most ecological theory has been developed outside Australasia; this biogeographical region thus provides an excellent case study for investigating whether the generally accepted hypotheses from ecological theory really are applicable in a different context. Furthermore, many excellent observational studies have been carried out in Australasia; the history of invasions in that region can be viewed as a series of experimental tests of ecological theory. Indeed, the Australian native flora and fauna was so different from that of the rest of the world, that Darwin (before he became an atheist) asked himself in his diaries whether there had been two Creators instead of one (see Chapter 1).

In Chapter 1, we explained the reasoning behind the selection of the hypotheses that are reviewed in the main chapters in this book. At the beginning of this project all the authors were asked to formulate hypotheses, to give their feedback on the hypotheses, the way they were formulated and whether the hypotheses could be assessed by them; as a result of this collective effort authors could agree on assessing this present set of hypotheses. The hypotheses are derived from general ecological theory (see Chapter 1) but the material at hand cannot be viewed simply as ‘data’ such that the hypotheses can be tested as a part of statistical inference. This type of inference is familiar and easy for most scientists to address, and that is where most authors of this book clearly felt more secure than when they had to arrive at judgements from observations or from historical reconstructions. The overall conclusions, based on a meta-analysis of the assessment/testing of the 11 hypotheses by the authors of the chapters on species that moved into or out of Australasia as presented in the following tables, are clear: after weighing up the evidence many of the authors of chapters in this book concluded that there was no support for the individual hypothesis, or that they had to reject the hypothesis.

Type
Chapter
Information
Invasion Biology and Ecological Theory
Insights from a Continent in Transformation
, pp. 497 - 516
Publisher: Cambridge University Press
Print publication year: 2014

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References

Bakker, K. (1980). A place on the planet: some reflections on population ecology. Netherlands Journal of Zoology 30: 151–160.CrossRefGoogle Scholar
Beerling, D. J., McElwain, J. C. and Osborne, C. P. (1998). Stomatal responses of the ‘living fossil’ Ginkgo biloba L. to changes in atmospheric CO2 concentrations. Journal of Experimental Botany 49: 1603–1607.Google Scholar
Bowman, D. (2012). Bring elephants to Australia?Nature 482: 30.CrossRefGoogle ScholarPubMed
Bronstert, A. (2003). Floods and climate change: interactions and impacts. Risk Analysis 23: 545–557.CrossRefGoogle ScholarPubMed
Chase, J. M. (2010). Stochastic community assembly causes higher biodiversity in more productive environments. Science 328: 1388–1391.CrossRefGoogle ScholarPubMed
Cochrane Collaboration (n.d.) Available at: .
Cole, L. C. (1960). Competitive exclusion. Science 132: 348–349.CrossRefGoogle ScholarPubMed
Connor, E. F. and Simberloff, D. S. (1979). The assembly of species communities: chance or competition?Ecology 60: 1132–1140.CrossRefGoogle Scholar
Daehler, C. C. (1998). The taxonomic distribution of invasive angiosperm plants: ecological insights and comparison to agricultural weeds. Biological Conservation 84: 167–180.CrossRefGoogle Scholar
Darwin, C. (1859). On the Origin of Species by Means of Natural Selection. London: John Murray.Google Scholar
De Bruyn, G. J. (1980). Coexistence of competitors: a simulation model. Netherlands Journal of Zoology 30: 345–368.CrossRefGoogle Scholar
Den Boer, P. J. (1980). Exclusion or coexistence and the taxonomic or ecological relationship between species. Netherlands Journal of Zoology 30: 278–306.CrossRefGoogle Scholar
Dunbar, M. J. (1980). The blunting of Occam’s Razor, or to hell with parsimony. Canadian Journal of Zoology 58: 123–128.CrossRefGoogle Scholar
Easton, V. and McColl, J. H. (1997). Steps Statistical Glossary v.1.1. Available at: .
Elton, C. S. (1958). The Ecology of Invasions by Animals and Plants. London: Methuen.CrossRefGoogle Scholar
Gause, G. F. (1934). The Struggle for Existence. Baltimore, MD: Williams and Wilkins.CrossRefGoogle ScholarPubMed
Hierro, J. L., Maron, J. L. and Callaway, R. M. (2005). A biogeographical approach to plant invasions: the importance of studying exotics in their introduced and native range. Journal of Ecology 93: 5–15.CrossRefGoogle Scholar
Hilliker, J. L., Akasapu, G. and Young, G. S. (2010). Assessing the short-term forecast capability of nonstandardized surface observations using the national digital forecast database (NDFD). Journal of Applied Meteorology and Climatology 49: 1397–1411.CrossRefGoogle Scholar
Hubbell, S. P. (2001). The Unified Neutral Theory of Biodiversity and Biogeography. Princeton, NJ: Princeton University Press.Google Scholar
Hutchinson, G. E. (1957). Concluding remarks: Cold Spring Harbour Symposium. Quantitative Biology 22: 415–427.CrossRefGoogle Scholar
Kareiva, J. (1996). Developing a predictive ecology for non-indigenous species and ecological invasions. Ecology 77: 1651–1652.CrossRefGoogle Scholar
Lack, D. (1947). Darwin’s Finches, An Essay on the General Biological Theory of Evolution. Cambridge: Cambridge University Press.Google Scholar
Lawton, J. H. (1999). Are there general laws in ecology?Oikos 84: 177–192.CrossRefGoogle Scholar
Lockwood, J. L., Hoopes, M. F. and Marchetti, M. P. (2007). Invasion Ecology. Oxford: Blackwell Publishing.Google Scholar
MacArthur, M. H. and Wilson, E. O. (1963). An equilibrium theory of insular zoogeography. Evolution 17: 373–387.CrossRefGoogle Scholar
MacArthur, R. H. and Wilson, E. O. (1967). The Theory of Island Biogeography. Princeton, NJ: Princeton University Press.Google Scholar
MacFadyen, A. (1973). Some thoughts on the behaviour of ecologists. Journal of Applied Ecology 44: 379–409.Google Scholar
McNab, B. K. (1971). On the ecological significance of Bergmann’s Rule. Ecology 52: 845–854.CrossRefGoogle Scholar
McNeely, J. A., Mooney, H. A., Neville, L. E., Schei, P. and Waage, J. K., eds. (2001). A Global Strategy on Invasive Alien Species. Gland, Switzerland: IUCN.
Olff, H., Ritchie, M. H. and Prins, H. H. T. (2002).Global environmental determinants of diversity in large herbivores. Nature 415: 901–904.CrossRefGoogle Scholar
Pullin, A. S. and Knight, T. M. (2005). Assessing conservation management’s evidence base: a survey of management-plan compilers in the United Kingdom and Australia. Conservation Biology 19: 1989–1996.CrossRefGoogle Scholar
Pysek, P. P., Prach, K.., Rejmánek, M. and Wade, M. (1995). Plant Invasions: General Aspects and Special Problems. Amsterdam: SPB Academic Publishing.Google Scholar
Quinn, J. F. and Dunham, A. E. (1983).On hypothesis testing in ecology and evolution. The American Naturalist 122: 602–617.CrossRefGoogle Scholar
Rejmánek, M. (2000). Invasive plants: approaches and predictions. Austral Ecology 25: 497–506.CrossRefGoogle Scholar
Rejmánek, M., Richardson, D. M. and Pyšek, P. (2005). Plant invasions and invasibility of plant communities In: van der Maarel, E. (ed.), Vegetation Ecology. Oxford: Blackwell, pp. 332–355.Google Scholar
Rosenzweig, M. L. (1995). Species Diversity in Space and Time. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Rosenzweig, M. L. (1999). Heeding the warning in biodiversity’s basic law. Science 284: 276–277.CrossRefGoogle Scholar
Sackeit, D. L., Rosenberg, W. C.., Gray, J. A. M.., Haynes, R. B. and Richardson, W. S. (1996). Evidence-based medicine: what it is and what it isn’t. BMJ 312: 71–72.CrossRefGoogle Scholar
Shea, K. and Chesson, P. (2002). Community ecology theory as a framework for biological invasions. Trends in Ecology and Evolution 17: 170–176.CrossRefGoogle Scholar
Sheail, J. (1987). Seventy-five Years in Ecology: The British Ecological Society. Oxford: Blackwell Scientific Publications.Google Scholar
Shields, D. J., Martin, I. M.., Martin, W. E. and Haefele, M. A. (2002). Survey results of the American public’s values, objectives, beliefs, and attitudes regarding forests and grasslands: A technical document supporting the 2000 USDA Forest Service RPA Assessment. Gen. Tech. Rep. RMRS-GTR-95. Fort Collins (CO): US Department of Agriculture, Forest Service, Rocky Mountain Research Station.
Smith, J. (2004). Doctors are not scientists. BMJ 328: 0.9.CrossRefGoogle ScholarPubMed
Suarez, A. V. and Tsutsui, N. D. (2008). The evolutionary consequences of biological invasions. Molecular Ecology 17: 351–360.CrossRefGoogle ScholarPubMed
Sutherland, W. J., Pullin, A. S.., Dolman, P. M. and Knight, T. M. (2004). The need for evidence-based conservation. Trends in Ecology and Evolution 19: 305–308.CrossRefGoogle ScholarPubMed
Suzuki, T., Fukuta, H.., Nagato, H. and Umekawa, M. (2000). Arginine kinase from Nautilus pompilius, a living fossil. The Journal of Biological Chemistry 75: 23 884–23 890.CrossRefGoogle Scholar
Tilman, D. (1982). Resource Competition and Community Structure. Princeton, NJ: Princeton University Press.Google ScholarPubMed
Toulmin, S. and Goodfield, J. (1965). The Discovery of Time. New York: Harper and Row.Google Scholar
Varley, G. C. (1957). Ecology as experimental science. Journal of Ecology 45: 639–648.CrossRefGoogle Scholar
Watt, K. E. F. (1971). Dynamics of numbers: a synthesis. In de Boer, P. J. and Gradwell, G. R. (eds), Dynamics of Populations. Wageningen, The Netherlands: Pudoc, pp. 568–580.Google Scholar
Weiner, J. (1995). On the practice of ecology. Journal of Ecology 83: 153–158.CrossRefGoogle Scholar
Wiens, J. A. (1989). The Ecology of Bird Communities, Vol. 2. Processes and Variations. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Williamson, M. (1996). Biological Invasions. London: Chapman and Hall.Google Scholar
Winter, R. (2006). Should doctors be scientists?10 reasons why. Available at: .
Zardoya, R. and Meyer, A. (1997). The complete DNA sequence of the mitochondrial genome of a ‘living fossil,’ the coelacanth (Latimeria chalumnae). Genetics 146: 995–1010.Google Scholar

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